What is the temperature, in °C, of 0.938 moles of $C l_{2}$ $Cl_2$ gas with a pressure of 3.24 atm and volume of 9.31 L?

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What is the temperature, in °C, of 0.938 moles of $C l_{2}$ $Cl_2$ gas with a pressure of 3.24 atm and volume of 9.31 L?

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Answer 1 · 2017-04-11T02:23:03

Using $P V = n R T$ $PV = nRT$ , about 392 degrees Kelvin or 119 degrees Celsius.

Explanation:

$P V = n R T$ $PV = nRT$
P = pressure
V = volume in liters
n = moles
R = the universal gas constant, which is different depending on the unit of pressure
T = temperature in Kelvin

So for this question
P = 3.24 atm
V = 9.31 L
n = .938
R = .0821 $\frac{L \cdot a t m}{m o l \cdot K}$ $(L*atm)/(mol *K)$

$P V = n R T$ $PV = nRT$
(3.24)(9.31) = (.938)(.0821)(T)
30.16 = 0.077T
T = 391.7 K

To convert Kelvin to Celsius, subtract 273.
391.7 - 273 = 118.7 C

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What is the temperature, in °C, of 0.938 moles of $C l_{2}$ $Cl_2$ gas with a pressure of 3.24 atm and volume of 9.31 L?

1 Answer

Explanation:

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Science

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What is the temperature, in °C, of 0.938 moles of Cl2Cl_2 gas with a pressure of 3.24 atm and volume of 9.31 L?

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Explanation:

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What is the temperature, in °C, of 0.938 moles of $C l_{2}$ $Cl_2$ gas with a pressure of 3.24 atm and volume of 9.31 L?